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首页> 外文期刊>Advanced Functional Materials >Large AuAg Alloy Nanoparticles Synthesized in Organic Media Using a One-Pot Reaction: Their Applications for High-Performance Bulk Heterojunction Solar Cells
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Large AuAg Alloy Nanoparticles Synthesized in Organic Media Using a One-Pot Reaction: Their Applications for High-Performance Bulk Heterojunction Solar Cells

机译:使用一锅法反应在有机介质中合成的大AuAg合金纳米颗粒:其在高性能本体异质结太阳能电池中的应用

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摘要

A one-pot synthesis of large size and high quality AuAg alloy nanoparticles (NPs) with well controlled compositions via hot organic media is demonstrated. Amid the synthesis, complexation between trioctylphosphine (TOP) and metal precursors is found, which slows down the rate of nucleation and leads to the growth of large-size AuAg nanoalloys. The wavelength and relative intensities of the resulting plasmon bands are readily fine-tuned during the synthetic process using different Au/Ag precursors molar ratios. In the polymer solar ceils, a key step in achieving high efficiency is the utilization of 1% Au_(11)Ag_(89) alloy NPs embedded in the active layer to promote the power conversion efficiency (PCE) up to 4.73%, which outperforms the reference device based on the control standard device of poly(3-hexylthiophene) (P3HT):phenyl-C_(61)-butyric acid methyl ester (PC_(61)BM) under identical conditions. Corresponding increases in short-circuit current density (J_(sc)), open-circuit voltage (V_(oc), fill factor (FF), and incident photon-to-current efficiency (I PCE) enable 31% PCE improvement due to the enhancement of the light-trapping and the improvement of charge transport in the active layer. The findings advance the fundamental understanding and point to the superiority of Au_(11)Ag_(89)nanoalloys as a promising metallic additive over Au, Ag, and Au_(28)Ag_(72) alloy NPs to boost the solar cell performance.
机译:演示了通过热有机介质一锅法合成的大型和高质量AuAg合金纳米颗粒(NPs),具有良好的成分控制。在合成过程中,发现三辛基膦(TOP)与金属前体之间的络合会减慢成核速率并导致大尺寸AuAg纳米合金的生长。在合成过程中,使用不同的Au / Ag前体摩尔比,可以轻松地微调所得等离激元带的波长和相对强度。在聚合物太阳能电池中,实现高效率的关键步骤是利用嵌入有源层中的1%Au_(11)Ag_(89)合金NP将功率转换效率(PCE)提升至4.73%,这优于在相同条件下,以聚(3-己基噻吩)(P3HT):苯基-C_(61)-丁酸甲酯(PC_(61)BM)为对照标准装置的参考装置。短路电流密度(J_(sc)),开路电压(V_(oc),填充因数(FF)和入射光子电流效率(I PCE)的相应增加可以使PCE提高31%这些发现为基础研究提供了基础,并指出Au_(11)Ag_(89)纳米合金作为有希望的金属添加剂优于Au,Ag和Al的优越性。 Au_(28)Ag_(72)合金NPs可以提高太阳能电池的性能。

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  • 来源
    《Advanced Functional Materials》 |2012年第19期|3975-3984|共10页
  • 作者单位

    Department of Chemistry National Taiwan University Taipei 106, Taiwan,Center of Emerging Material and Advanced Devices National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan,Center of Emerging Material and Advanced Devices National Taiwan University Taipei 106, Taiwan;

    Center of Emerging Material and Advanced Devices National Taiwan University Taipei 106, Taiwan,Department of Electrical Engineering and Graduate Institute of Electrooptical Engineering National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan;

    Department of Chemistry National Taiwan University Taipei 106, Taiwan,Center of Emerging Material and Advanced Devices National Taiwan University Taipei 106, Taiwan,Department of Electrical Engineering and Graduate Institute of Electrooptical Engineering National Taiwan University Taipei 106, Taiwan;

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